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Electrohydrodynamic-assisted Assembly of Hierarchically Structured 3D Crumpled Nanostructures for Efficient Solar Conversions

机译:分层结构的3D皱纳米结构的电流体动力辅助组件可实现高效的太阳能转换

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摘要

The tantalizing prospect of harnessing the unique properties of graphene crumpled nanostructures continues to fuel tremendous interest in energy storage and harvesting applications. However, the paper ball-like, hard texture, and closed-sphere morphology of current 3D graphitic nanostructure production not only constricts the conductive pathways but also limits the accessible surface area. Here, we report new insights into electrohydrodynamically-generated droplets as colloidal nanoreactors in that the stimuli-responsive nature of reduced graphene oxide can lead to the formation of crumpled nanostructures with a combination of open structures and doubly curved, saddle-shaped edges. In particular, the crumpled nanostructures dynamically adapt to non-spherical, polyhedral shapes under continuous deposition, ultimately assembling into foam-like microstructures with a highly accessible surface area and spatially interconnected transport pathways. The implementation of such crumpled nanostructures as three-dimensional rear contacts for solar conversion applications realize benefits of a high aspect ratio, electrically addressable and energetically favorable interfaces, and substantial enhancement of both short-circuit currents and fill-factors compared to those made of planar graphene counterparts. Further, the 3D crumpled nanostructures may shed lights onto the development of effective electrocatalytic electrodes due to their open structure that simultaneously allows for efficient water flow and hydrogen escape.
机译:利用石墨烯皱缩的纳米结构的独特性能的诱人前景继续激发了人们对能量存储和收集应用的极大兴趣。然而,当前3D石墨纳米结构生产的纸球状,硬质结构和闭合球形态不仅限制了导电路径,而且限制了可及的表面积。在这里,我们报告了对作为胶体纳米反应器的电动流体动力学产生的液滴的新见解,其中还原的氧化石墨烯的刺激响应特性可导致形成具有开放结构和双弯曲鞍形边缘的皱缩纳米结构。特别地,皱缩的纳米结构在连续沉积下动态地适应非球形的多面体形状,最终组装成具有高度可及的表面积和空间互连的运输途径的泡沫状微结构。将此类皱缩的纳米结构实现为用于太阳能转换应用的三维后接触件,具有以下优点:与平面制造的器件相比,具有高的长宽比,可电寻址且在能量上有利的界面,以及短路电流和填充因子的显着提高石墨烯对应物。此外,由于3D皱缩的纳米结构的开放结构同时允许有效的水流和氢气逸出,因此3D皱缩的纳米结构可能会为有效的电催化电极的发展提供启发。

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